General Winding and Feeding Apparatus
A general winding and feeding apparatus includes a rotating shaft on the upper side of a standing wall of a base, and a motor is connected to the rotating shaft in the standing wall. A swing arm extends across a traveling material and is situated at a suitable position on the standing wall. Digital variable frequency methods may be used to drive the motor, which operates in conjunction with light-coupled sensors to detect the traveling speed of a material on the swing arm and sense a swing position of the swing arm. Feedback is generated in real-time to modify the speed of the motor, and the constant speed travel of the material can be achieved while being either wound or unwound.
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1. Field of the Invention
The present invention relates to a general winding and feeding apparatus, and more particularly to an apparatus in which digital frequency variation technology is adopted to drive a motor, and optically coupled sensing technology operates in coordination therewith to detect the traveling speed of a material on a swinging arm and sense the swing position of the swinging arm. Whereby, feedback is utilized to properly modify the rotating speed of the motor, achieving constant-speed feeding of the material while being winding or feeding.
2. Background
A conventional winder structure primarily includes a rotating shaft projecting above a standing wall of a base and used for engaging with a spool around which a material can be wound, where a motor is installed in the standing wall and connected to the rotating shaft thereby providing a rotating power. In addition, a swinging arm is installed at a suitable position on the standing wall and extends across a traveling material. A buffering tension is achieved through the weight of the rolling shaft itself, and the material can be wound tightly without loosening.
The coupling structure is simple, but the use thereof is substantially broad; it can be used in a variety of different industries, for example, it can be used in the continuous winding of a long wire, paper or metal material such that it satisfies a significant extent of the market's needs. However, the conventional winder structure is used almost exclusively for material winding and not for material feed-out, and as such the operations thereof are limited.
Furthermore, the motor of a conventional winder is almost always driven directly by a DC motor or a synchronous AC motor, ensuring that the rotating speeds of the rotating shafts connected to each other are the same. Therefore, the distance of adjacent winding circles changes as the material winding radius increases gradually during the material winding operations, making it nearly impossible to allocate paper feeding speeds relatively, and consequently, the rotating speeds of the inner and outer layers of the paper are not uniform.
SUMMARY OF THE INVENTIONTo improve the problems of conventional winders mentioned above, the present invention is proposed.
Embodiments of the present invention disclose a general purpose winding and feeding apparatus, which includes:
a base, a standing wall disposed on an upper side thereof, and a bottom plate disposed on a bottom thereof;
a rotating shaft disposed on an upper side of the standing wall of the base and used for winding or releasing a material;
a motor, driven by means of digital variable frequency technology, installed in the standing wall of the base and connected to the rotating shaft, thereby providing rotating power;
a swing arm, one end thereof having a fixed shaft disposed on the standing wall, a positioning hole plate disposed on the fixed shaft, another end thereof having a rod thereby allowing the swing arm to extend across a traveling material, a grating wheel installed in the rod; and
at least two light-coupled sensors, a first light-coupled sensor installed in the swing arm and corresponding to the grating wheel of the rod of the swing arm, thereby detecting rotating speeds thereof, a second light-coupled sensor thereof installed in the standing wall of the base and corresponding to the positing hole plate of the fixed shaft of the swing arm, thereby detecting swing positions thereof;
whereby, a user can set a material feed speed in inches per second alone, automatically adjusting a relative position and rotating speed, a material traveling speed and the swing position of the swing arm both detected by the two light-coupled sensors during material winding or feeding operations so as to yield feedback to modify the rotating speed of the motor, achieving the object of maintaining a constant feed speed of the material.
In addition, an indication lamp, which is lit to indicate whether the rotating shaft is rotated clockwise or anticlockwise, may further respectively be installed on both left and right sides of the swing arm additionally according to embodiments of the present invention so as to allow the user to differentiate easily whether the machine is being operated in a material winding state or feeding state.
Furthermore, embodiments of the present invention may further include a fast spool axle center fixing module capable of coupling to a variety of different diameters of material shafts with the rotating shaft, thereby loading and unloading the material quickly.
The present invention can be more fully understood by reference to the following description and accompanying drawings, in which:
First, referring to
A standing wall 11 is disposed on the upper side of the base 1, and a bottom plate 12 is disposed on the bottom of the base 1. Where a handle 13 extends from the top of the standing wall 11, a bracket 111 is disposed in the standing wall 11 and a positioning hole 112 is disposed in the middle of one side of the standing wall 11.
The rotating shaft 2 used to engage with a spool 6, which is used for winding or releasing a material, and is installed on the upper side of the standing wall 11 of the base 1, where a plate 21 is respectively installed on both sides of the rotating shaft 2, thereby clamping and fixing the spool 6, and a fixing element 22 for fixing and positioning the plate 21 and the rotating shaft 2, which may be, for example, a rotating handle bar, and is installed on the outer side of the plate 21 and the rotating shaft 2.
The motor 3 is driven using a digital variable frequency method, and is installed on the bracket 111 of the standing wall 11 of the base 1, and connected to the rotating shaft 2 through a gear train 31, thereby providing rotating power.
The swing arm 4 has a swing arm seat 41, where a fixed shaft 42 at one end of the swing arm seat 41 is disposed on the standing wall 11. A positioning hole plate 421 is disposed on the fixed shaft 42, and a rod 43 is disposed on another end of the swing arm seat 41, where a silicone rotating shaft 44 is disposed around the rod 43, thereby extending across a traveling material. Furthermore, a grating wheel 45 is installed on the inner end of the rod 43.
The first light-coupled sensor 51 is used for detecting the rotating speed of the rod 43 and is installed in the swing arm seat 41 of the swing arm 4 at a position that corresponds to the grating wheel 45 of the rod 43. The second light-coupled sensor 52 is installed in the standing wall 11 of the base 1 at a position that corresponds to the positioning hole plate 421 of the fixed shaft 42 of the swing arm 4; the swing position of the swing arm 4 can thus be detected based upon hole sites disposed around the positioning hole plate 421 as the swing arm 4 moves, where a coding, such as Gray coding, may be adopted for the coding of the positioning hole plate 421, thereby decreasing incorrect code reads and increasing the accuracy of positioning determination.
Referring again to
Referring to
In addition, referring to
Adopting digital variable frequency technology to drive the motor 3 makes embodiments of the present invention more electrically efficient and the clockwise and anticlockwise rotation controls easy to implement. In addition, because the indication lamps 46 are respectively oppositely disposed inside the left and right sides of the swing arm seat 41 of the swing arm 4, and light up separately depending upon which direction the motor 3 is rotating, such embodiments of the present invention can be used as a winder as well as feeder. Consequently, the various embodiments contemplate broad uses and can be used in various different industries, such as the continuous winding of long-striped wire, paper or metal materials. Although the following application uses paper winding as an example, it should be understood that the invention is not limited to such embodiments.
Referring again to
When an embodiment of the present invention is used for paper winding, as shown in
While material winding is proceeding, as shown in
In addition, referring again to
Additional advantages and modifications will readily occur to those skilled in the art. Therefore, the invention in its broader aspects is not limited to the specific details and representative embodiments shown and described herein. Accordingly, various modifications may be made without departing from the spirit or scope of the general inventive concept as defined by the appended claims and their equivalents.
Claims
1. A general winding and feeding apparatus, comprising:
- a base, a standing wall disposed on an upper side thereof, and a bottom plate disposed on a bottom thereof;
- a rotating shaft disposed on an upper side of said standing wall of said base, and used for engaging with a spool;
- a digital variable frequency motor installed in said standing wall of said base and connected with said rotating shaft, thereby providing rotating power to the shaft;
- a swing arm, one end thereof having a fixed shaft disposed on said standing wall, a positioning hole plate disposed on said fixed shaft, another end thereof having a rod thereby allowing the swing arm to be extend across a traveling material, a grating wheel installed in said rod; and
- at least two light-coupled sensors, a first light-coupled sensor installed in said swing arm at a position corresponding to said grating wheel of said rod of said swing arm to detect a rotational speed of said rod, a second light-coupled sensor thereof installed in said standing wall of said base at a position corresponding to said positing hole plate of said fixed shaft of said swing arm to detect a swing position of said swing arm and generating feedback to modify said motor rotating speed so as to permit traveling of said material to be maintained at a constant speed while said material is wound or fed.
2. The general winding and feeding apparatus according to claim 1, wherein Gray coding is utilized to encode said positioning hole plate.
3. The general winding and feeding apparatus according to claim 1, wherein a plate for clamping and fixing said spool is further disposed on two sides of said rotating shaft, and a fixing element is installed on an outside of said plate and said rotating shaft to fix said plate.
4. The general winding and feeding apparatus according to claim 2, wherein a plate for clamping and fixing said spool is further disposed on two sides of said rotating shaft, and a fixing element is installed on an outside of said plate and said rotating shaft to fix said plate.
5. The general winding and feeding apparatus according to claim 3, wherein a handle extend from an upper end of said standing wall of said base, a bracket is disposed in said standing wall, and a positioning hole is disposed on the middle of one side of said standing wall.
6. The general winding and feeding apparatus according to claim 4, wherein a handle extend from an upper end of said standing wall of said base, a bracket is disposed in said standing wall, and a positioning hole is disposed on the middle of one side of said standing wall.
7. The general winding and feeding apparatus according to claim 5, wherein said motor is a stepper motor installed on said bracket of said standing wall of said base, a gear train installed between said motor and said rotating shaft and connected thereto, a grating disposed on said gear train, and a third light-coupled sensor for detecting whether said motor is operating normally is further installed on said bracket.
8. The general winding and feeding apparatus according to claim 6, wherein said motor is a stepper motor installed on said bracket of said standing wall of said base, a gear train installed between said motor and said rotating shaft and connected thereto, a grating disposed on said gear train, and a third light-coupled sensor for detecting whether said motor is operating normally is further installed on said bracket.
9. The general winding and feeding apparatus according to claim 5, wherein a swing arm seat is further installed between said fixed shaft and said rod of said swing arm, and indication lamps configured to light up to display which direction said rotating shaft is rotated in are further respectively installed on left and right sides of said swing arm seat; an elastic locking element, further installed in the middle of said swing arm seat at a position corresponding to said positioning hole disposed in the middle of said side of said standing wall of said base, allowing said swing arm to be brought home and retained while not in use.
10. The general winding and feeding apparatus according to claim 6, wherein a swing arm seat is further installed between said fixed shaft and said rod of said swing arm, and indication lamps configured to light up to display which direction said rotating shaft is rotated in are further respectively installed on left and right sides of said swing arm seat; an elastic locking element, further installed in the middle of said swing arm seat at a position corresponding to said positioning hole disposed in the middle of said side of said standing wall of said base, allowing said swing arm to be brought home and retained while not in use.
11. The general winding and feeding apparatus according to claim 7, wherein fan blades are installed on said grating of said gear train.
12. The general winding and feeding apparatus according to claim 8, wherein fan blades are installed on said grating of said gear train.
13. The general winding and feeding apparatus according to claim 9, wherein a silicone rotating shaft is disposed around said rod of said swing arm.
14. The general winding and feeding apparatus according to claim 10, wherein a silicone rotating shaft is disposed around said rod of said swing arm.
15. The general winding and feeding apparatus according to claim 9, wherein a fast spool axle center fixing module is further installed on said rotating shaft, said fast spool axle center fixing module comprises elastic engagement elements disposed on said rotating shaft that slide on sides of said rotating shaft and used for aligning and engaging with similarly shaped sliding masses in inner holes of a plurality of spool fixing elements, at least three elastic projecting masses disposed equidistantly around an outside of each spool fixing element, and engagement flanges are disposed on a side of said spool fixing elements; and wherein engagement holes are disposed on said plate of said rotating shaft configured so that the engagement flanges are capable of rotating in and engaging therewith; outsides of said spool fixing elements having different specifications, thereby allowing differently sized spools to be engaged therewith.
16. The general winding and feeding apparatus according to claim 10, wherein a fast spool axle center fixing module is further installed on said rotating shaft, said fast spool axle center fixing module comprises elastic engagement elements disposed on said rotating shaft that slide on sides of said rotating shaft and used for aligning and engaging with similarly shaped sliding masses in inner holes of a plurality of spool fixing elements, at least three elastic projecting masses disposed equidistantly around an outside of each spool fixing element, and engagement flanges are disposed on a side of said spool fixing elements; and wherein engagement holes are disposed on said plate of said rotating shaft configured so that the engagement flanges are capable of rotating in and engaging therewith; outsides of said spool fixing elements having different specifications, thereby allowing differently sized spools to be engaged therewith.
Type: Application
Filed: Nov 14, 2010
Publication Date: May 17, 2012
Patent Grant number: 8276838
Applicant: Godex International Co., Ltd. (Chung-Ho City)
Inventors: Feng-Yi Tai (Chung-Ho City), Ta-Cheng Hsiung (Hsinchu City), Chien-Hua Chen (Taipei City)
Application Number: 12/945,887
International Classification: B65H 18/10 (20060101); B65H 16/00 (20060101);